Suchergebnisse - "Interfaz gráfica de usuario (GUI)"

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    Autoren: Galeano, Roylan

    Quelle: Repositorio Universidad Pontificia Bolivariana
    Universidad Pontificia Bolivariana
    instacron:Universidad Pontificia Bolivariana

    Dateibeschreibung: application/pdf

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    Quelle: Universidad Autónoma del Estado de México
    UAEMEX
    Redalyc-UAEMEX

    Dateibeschreibung: application/pdf

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    Dateibeschreibung: 83 páginas; application/pdf

    Relation: [ALHW23] A. Hodges, G. Tsekouras, A. Al-Musawi, K. Wagner, C. Lee, G. F. Swiegers, A. L. Hoang, S. Balakrishnan, and G. G. Wallace. High performing catalysts for energy-efficient commercial alkaline water electrolysis. Sustainable Energy Fuels, 7:31–60, 2023.; [Ano20] Anonymous. Advancements in alkaline water electrolyzers. Electronics, 9(5):871, 2020.; [Aut23] Example Author. Analysis of optimal operating temperature for alkaline electrolyzers. Journal of Electrolyzer Research, 2023.; [BT20] Jörn Brauns and Thomas Turek. Alkaline water electrolysis powered by renewable energy: A review. Processes, 8(2):248, 2020.; [ea23] Another Author et al. Dynamic response of alkaline water electrolyzers to variable loads. Nature Energy, 2023.; [fp23] Redacted for privacy. Principles and implementations of electrolysis systems for water splitting. Materials Horizons, 2023. Accessed: 2024-06-19.; [GB24] Rashko Rashkov, Evelina Slavcheva, Galin Borisov, and Vasil Bachvarov. Advanced alkaline water electrolysis stack with non-noble catalysts and hybrid electrical connections of the single cells. Catalysts, 14(3):179, 2024.; [IR23] International Renewable Energy Agency (IRENA). World energy transitions outlook 2023: 1.5°C pathway. IRENA, 2023.; [Sci23] Hydrogen production by alkaline water electrolysis. SciELO, 2023.; [Smo23] Tom Smolinka. Electrolyzer overview: Lowering the cost of hydrogen and distributing its production. pv magazine USA, 2023.; [Thy23] ThyssenKrupp. Hydrogen generation: Electrolyzer technologies overview. https://ucpcdn.thyssenkrupp.com/_legacy/UCPthyssenkruppBAISUhdeChlorineEngineers/assets.files/products/water_electrolysis/tk_19_0820_hydrogen_broschuere_2019_03.pdf, 2023. Accessed: 2024-06-17.; [TS22] Jürgen Garche, Mihails Kusnezoff, Tom Smolinka, and Henry Bergmann. The history of water electrolysis from its beginnings to the present. Fraunhofer-Gesellschaft, 2022.; [VG+22] Frederik Van Goor et al. A review on the safety and risks of hydrogen systems. International Journal of Hydrogen Energy, 47:20981–21000, 2022.; [XSC+24] Longchang Xue, Shuaishuai Song, Wei Chen, Bin Liu, and Xin Wang. Enhancing efficiency in alkaline electrolysis cells: Optimizing flow channels through multiphase computational fluid dynamics modeling. Energies, 17(2):448; https://hdl.handle.net/1992/75639; instname:Universidad de los Andes; reponame:Repositorio Institucional Séneca; repourl:https://repositorio.uniandes.edu.co/

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